Files
sanderling/internal/hierarchy/hierarchy.go
T
pj c356340563 fix(hierarchy): rank spatial-fallback matches by specificity
The bounds-containment fallback returned the first pre-order match, so
a screen-sized container could win over the intended small element.
Matches are now ordered smallest-area first; equal-area matches keep
pre-order, preserving the iOS-flat equal-bounds sibling pattern.
2026-06-06 00:36:32 +05:30

635 lines
19 KiB
Go

// Package hierarchy parses the TreeNode JSON produced by the native sidecar
// and resolves selectors against it.
//
// Selector grammar (v2.0):
//
// String selectors (global scan or element-scoped):
// attribute:value - substring match; exact for "true"/"false" booleans
// id:<suffix> - substring on resource-id / identifier (backward compat)
// text:<value> - substring on text attribute
// desc:<value> - substring on content-desc / accessibilityText
// descPrefix:<prefix> - starts-with on content-desc / accessibilityText
//
// Object selectors (multi-attribute AND, element-scoped or global):
// { attr: value, ... } - all key/value pairs must match; substring / boolean semantics
//
// Path queries (global scan only, string form):
// <sel> > <sel> > ... - each segment matched within subtree of previous match
//
// Cross-platform aliases are expanded automatically: "label" / "accessibilityLabel"
// resolve to accessibilityText; "content-desc" also checks accessibilityText and
// vice-versa; "identifier" / "accessibilityIdentifier" / "testTag" resolve to
// resource-id (and to each other) so a Compose testTag matches whether the
// underlying platform exposes it as resource-id (Android) or accessibilityIdentifier (iOS).
package hierarchy
import (
"encoding/json"
"fmt"
"maps"
"regexp"
"sort"
"strconv"
"strings"
)
// Bounds is an inclusive rectangle in device pixels.
type Bounds struct {
Left int `json:"left"`
Top int `json:"top"`
Right int `json:"right"`
Bottom int `json:"bottom"`
}
// Center returns the center point of the bounds.
func (b Bounds) Center() (int, int) {
return (b.Left + b.Right) / 2, (b.Top + b.Bottom) / 2
}
// Width returns the bounds' width.
func (b Bounds) Width() int { return b.Right - b.Left }
// Height returns the bounds' height.
func (b Bounds) Height() int { return b.Bottom - b.Top }
// Element is a flattened view of one hierarchy node.
type Element struct {
ResourceID string `json:"resourceId,omitempty"`
Text string `json:"text,omitempty"`
Description string `json:"description,omitempty"`
Class string `json:"class,omitempty"`
Package string `json:"package,omitempty"`
// Screen holds the current route/screen name when set by the driver on the
// root element (web platform only; empty for native platforms).
Screen string `json:"screen,omitempty"`
Clickable bool `json:"clickable,omitempty"`
Enabled bool `json:"enabled,omitempty"`
Checked bool `json:"checked,omitempty"`
Focused bool `json:"focused,omitempty"`
Selected bool `json:"selected,omitempty"`
Editable bool `json:"editable,omitempty"`
Bounds Bounds `json:"bounds"`
Attributes map[string]string `json:"attrs,omitempty"`
}
// Node is one node in the hierarchy tree.
type Node struct {
Element
Children []*Node `json:"-"`
tree *Tree
}
// Tree is a flat collection of every node in a hierarchy dump, in pre-order.
type Tree struct {
Root *Node `json:"-"`
Elements []*Element `json:"elements"`
}
// treeNodeJSON mirrors the sidecar TreeNode JSON structure.
type treeNodeJSON struct {
Attributes map[string]string `json:"attributes"`
Children []treeNodeJSON `json:"children"`
Clickable *bool `json:"clickable"`
Enabled *bool `json:"enabled"`
Focused *bool `json:"focused"`
Checked *bool `json:"checked"`
Selected *bool `json:"selected"`
Editable *bool `json:"editable"`
}
// Selector describes a multi-attribute AND match.
type Selector struct {
Filters []AttrFilter
}
// AttrFilter is a single attribute predicate within a Selector.
type AttrFilter struct {
Attr string
Value string
}
// attributeAliases maps user-written attribute names to the actual keys present
// in the TreeNode attributes map. Both directions are listed so cross-platform
// matching works regardless of which name the caller uses.
var attributeAliases = map[string][]string{
// Android XML legacy name; web driver uses content-desc; the sidecar normalises to accessibilityText
"content-desc": {"accessibilityText"},
// iOS AXElement / UIKit names
"label": {"accessibilityText"},
"accessibilityLabel": {"accessibilityText"},
// accessibilityText is the canonical key; also check content-desc for Android/web
"accessibilityText": {"content-desc"},
// resource-id canonical key; also check identifier (iOS AXElement raw field)
"resource-id": {"identifier", "accessibilityIdentifier"},
// iOS identifier names
"identifier": {"resource-id", "accessibilityIdentifier"},
"accessibilityIdentifier": {"resource-id", "identifier"},
// Compose testTag surfaces as resource-id on Android, accessibilityIdentifier on iOS
"testTag": {"resource-id", "identifier", "accessibilityIdentifier"},
// iOS AXElement raw name for hintText
"placeholderValue": {"hintText"},
// iOS AXElement raw name for class
"elementType": {"class"},
}
// matchAttr returns true when the element has an attribute matching attr:value.
// Alias expansion is applied so cross-platform names resolve correctly.
// Boolean values ("true"/"false") use exact comparison; all others use substring.
// Returns false gracefully when no candidate attribute has data.
func matchAttr(element *Element, attr, value string) bool {
candidates := append([]string{attr}, attributeAliases[attr]...)
for _, key := range candidates {
attrVal, ok := element.Attributes[key]
if !ok || attrVal == "" {
continue
}
if value == "true" || value == "false" {
if attrVal == value {
return true
}
} else {
if strings.Contains(attrVal, value) {
return true
}
}
}
return false
}
// matchSelector returns true when all filters in sel match the element (AND semantics).
func matchSelector(element *Element, sel Selector) bool {
for _, f := range sel.Filters {
if !matchAttr(element, f.Attr, f.Value) {
return false
}
}
return true
}
// Parse parses a sidecar TreeNode JSON hierarchy.
func Parse(text string) (*Tree, error) {
text = strings.TrimSpace(text)
if text == "" {
return &Tree{}, nil
}
var root treeNodeJSON
if err := json.Unmarshal([]byte(text), &root); err != nil {
return nil, fmt.Errorf("hierarchy: %w", err)
}
tree := &Tree{}
tree.Root = walkNode(&root, tree)
return tree, nil
}
func walkNode(node *treeNodeJSON, tree *Tree) *Node {
n := &Node{Element: *elementFromNode(node), tree: tree}
tree.Elements = append(tree.Elements, &n.Element)
for i := range node.Children {
n.Children = append(n.Children, walkNode(&node.Children[i], tree))
}
return n
}
func elementFromNode(node *treeNodeJSON) *Element {
attrs := node.Attributes
element := &Element{}
element.ResourceID = attrs["resource-id"]
if element.ResourceID == "" {
element.ResourceID = attrs["identifier"]
}
if element.ResourceID == "" {
element.ResourceID = attrs["accessibilityIdentifier"]
}
element.Text = attrs["text"]
element.Description = attrs["content-desc"]
if element.Description == "" {
element.Description = attrs["accessibilityText"]
}
element.Class = attrs["class"]
element.Package = attrs["package"]
if element.Package == "" {
// Android omits an explicit package attribute, but native views carry
// it as the resource-id prefix (`com.android.systemui:id/...`). Compose
// testTags are colon-less and leave the package empty, which keeps them
// in scope. This lets target selection tell the app apart from the soft
// keyboard and system UI.
if resourceID := attrs["resource-id"]; resourceID != "" {
if colon := strings.IndexByte(resourceID, ':'); colon > 0 {
element.Package = resourceID[:colon]
}
}
}
element.Screen = attrs["sanderling-screen"]
if node.Clickable != nil {
element.Clickable = *node.Clickable
}
if node.Enabled != nil {
element.Enabled = *node.Enabled
}
if node.Focused != nil {
element.Focused = *node.Focused
}
if node.Checked != nil {
element.Checked = *node.Checked
}
if node.Selected != nil {
element.Selected = *node.Selected
}
if node.Editable != nil {
element.Editable = *node.Editable
} else {
element.Editable = strings.Contains(element.Class, "EditText") || attrs["hintText"] != ""
}
if b, ok := attrs["bounds"]; ok && b != "" {
bounds, err := parseBounds(b)
if err == nil {
element.Bounds = bounds
}
}
element.Attributes = make(map[string]string, len(attrs)+5)
maps.Copy(element.Attributes, attrs)
if node.Clickable != nil {
element.Attributes["clickable"] = strconv.FormatBool(*node.Clickable)
}
if node.Enabled != nil {
element.Attributes["enabled"] = strconv.FormatBool(*node.Enabled)
}
if node.Focused != nil {
element.Attributes["focused"] = strconv.FormatBool(*node.Focused)
}
if node.Checked != nil {
element.Attributes["checked"] = strconv.FormatBool(*node.Checked)
}
if node.Selected != nil {
element.Attributes["selected"] = strconv.FormatBool(*node.Selected)
}
element.Attributes["editable"] = strconv.FormatBool(element.Editable)
return element
}
// Find returns the first element matching the selector, or nil.
func (t *Tree) Find(selector string) *Element {
node := t.FindNode(selector)
if node == nil {
return nil
}
return &node.Element
}
// FindAll returns every element matching the selector.
func (t *Tree) FindAll(selector string) []*Element {
nodes := t.FindAllNodes(selector)
elements := make([]*Element, len(nodes))
for i, n := range nodes {
elements[i] = &n.Element
}
return elements
}
// FindNode returns the first Node matching the selector, or nil.
func (t *Tree) FindNode(selector string) *Node {
if strings.Contains(selector, " > ") {
return findPathNode(t.Root, strings.Split(selector, " > "))
}
kind, value, ok := parseSelector(selector)
if !ok {
return nil
}
nodes := searchSubtree(t.Root, kind, value)
if len(nodes) == 0 {
return nil
}
return nodes[0]
}
// FindAllNodes returns every Node matching the selector.
func (t *Tree) FindAllNodes(selector string) []*Node {
if strings.Contains(selector, " > ") {
return findPathAllNodes(t.Root, strings.Split(selector, " > "))
}
kind, value, ok := parseSelector(selector)
if !ok {
return nil
}
return searchSubtree(t.Root, kind, value)
}
// FindBySelectorPath walks the selector chain starting from the tree root.
func (t *Tree) FindBySelectorPath(path []Selector) *Node {
if t == nil || t.Root == nil {
return nil
}
return t.Root.FindBySelectorPath(path)
}
// FindAllBySelectorPath walks the selector chain starting from the tree root.
func (t *Tree) FindAllBySelectorPath(path []Selector) []*Node {
if t == nil || t.Root == nil {
return nil
}
return t.Root.FindAllBySelectorPath(path)
}
// Find returns the first Node scoped to this node (descendants, with spatial
// fallback) matching the string selector. Path queries within the selector are
// not supported here.
func (n *Node) Find(selector string) *Node {
return firstNode(n.FindAll(selector))
}
// FindAll returns all Nodes scoped to this node (descendants, with spatial
// fallback) matching the string selector.
func (n *Node) FindAll(selector string) []*Node {
kind, value, ok := parseSelector(selector)
if !ok {
return nil
}
return n.scopedNodes(func(element *Element) bool {
return match(element, kind, value)
})
}
// FindBySelector returns the first Node scoped to this node matching sel (AND semantics).
func (n *Node) FindBySelector(sel Selector) *Node {
return firstNode(n.FindAllBySelector(sel))
}
// FindAllBySelector returns all Nodes scoped to this node matching sel (AND semantics).
func (n *Node) FindAllBySelector(sel Selector) []*Node {
return n.scopedNodes(func(element *Element) bool {
return matchSelector(element, sel)
})
}
// FindBySelectorPath walks a chain of selectors. The first selector is matched
// in the receiver's scope; each subsequent selector is matched in the scope of
// the previous match. Returns the deepest match or nil.
func (n *Node) FindBySelectorPath(path []Selector) *Node {
if len(path) == 0 {
return nil
}
for _, candidate := range n.FindAllBySelector(path[0]) {
if len(path) == 1 {
return candidate
}
if deeper := candidate.FindBySelectorPath(path[1:]); deeper != nil {
return deeper
}
}
return nil
}
// FindAllBySelectorPath returns every deepest match for the selector chain
// scoped under the receiver.
func (n *Node) FindAllBySelectorPath(path []Selector) []*Node {
if len(path) == 0 {
return nil
}
var result []*Node
for _, candidate := range n.FindAllBySelector(path[0]) {
if len(path) == 1 {
result = append(result, candidate)
continue
}
result = append(result, candidate.FindAllBySelectorPath(path[1:])...)
}
return result
}
func firstNode(nodes []*Node) *Node {
if len(nodes) == 0 {
return nil
}
return nodes[0]
}
// scopedNodes returns this node's descendants matching accept, in pre-order.
// When no descendant matches, nodes spatially contained in this node's bounds
// are matched instead. Compose on iOS emits a testTag node as an empty leaf
// sibling of the content it labels rather than as an ancestor, so descendant
// search under the tagged node finds nothing; bounds containment recovers the
// intended scope.
func (n *Node) scopedNodes(accept func(*Element) bool) []*Node {
var result []*Node
for _, child := range n.Children {
collectMatches(child, accept, &result)
}
if len(result) > 0 {
return result
}
for _, candidate := range n.spatialScope() {
if accept(&candidate.Element) {
result = append(result, candidate)
}
}
// Spatial containment alone lets a large container outrank the intended
// small element; the most specific (smallest) match wins instead.
sortBySpecificity(result)
return result
}
// sortBySpecificity orders nodes ascending by bounds area, so the smallest
// (most specific) containing match comes first. Equal-area nodes keep their
// pre-order position.
func sortBySpecificity(nodes []*Node) {
sort.SliceStable(nodes, func(i, j int) bool {
return nodes[i].Bounds.Width()*nodes[i].Bounds.Height() <
nodes[j].Bounds.Width()*nodes[j].Bounds.Height()
})
}
func collectMatches(node *Node, accept func(*Element) bool, result *[]*Node) {
if accept(&node.Element) {
*result = append(*result, node)
}
for _, child := range node.Children {
collectMatches(child, accept, result)
}
}
// spatialScope returns every node in the tree, in pre-order, whose positive
// bounds lie fully inside this node's bounds, excluding the node itself.
func (n *Node) spatialScope() []*Node {
if n.tree == nil || n.tree.Root == nil {
return nil
}
if n.Bounds.Width() <= 0 || n.Bounds.Height() <= 0 {
return nil
}
var result []*Node
var walk func(*Node)
walk = func(candidate *Node) {
if candidate != n &&
candidate.Bounds.Width() > 0 && candidate.Bounds.Height() > 0 &&
containsBounds(n.Bounds, candidate.Bounds) {
result = append(result, candidate)
}
for _, child := range candidate.Children {
walk(child)
}
}
walk(n.tree.Root)
return result
}
// containsBounds reports whether outer fully contains inner (inclusive).
func containsBounds(outer, inner Bounds) bool {
return inner.Left >= outer.Left && inner.Top >= outer.Top &&
inner.Right <= outer.Right && inner.Bottom <= outer.Bottom
}
func findPathNode(root *Node, segments []string) *Node {
if root == nil || len(segments) == 0 {
return nil
}
kind, value, ok := parseSelector(segments[0])
if !ok {
return nil
}
for _, node := range searchSubtree(root, kind, value) {
if len(segments) == 1 {
return node
}
if result := findPathDescendantsNode(node, segments[1:]); result != nil {
return result
}
}
return nil
}
func findPathDescendantsNode(root *Node, segments []string) *Node {
for _, node := range root.FindAll(segments[0]) {
if len(segments) == 1 {
return node
}
if result := findPathDescendantsNode(node, segments[1:]); result != nil {
return result
}
}
return nil
}
func findPathAllNodes(root *Node, segments []string) []*Node {
if root == nil || len(segments) == 0 {
return nil
}
kind, value, ok := parseSelector(segments[0])
if !ok {
return nil
}
var result []*Node
for _, node := range searchSubtree(root, kind, value) {
if len(segments) == 1 {
result = append(result, node)
continue
}
result = append(result, findPathAllDescendantsNodes(node, segments[1:])...)
}
return result
}
func findPathAllDescendantsNodes(root *Node, segments []string) []*Node {
var result []*Node
for _, node := range root.FindAll(segments[0]) {
if len(segments) == 1 {
result = append(result, node)
continue
}
result = append(result, findPathAllDescendantsNodes(node, segments[1:])...)
}
return result
}
// searchSubtree returns all nodes under root (inclusive) matching kind:value.
func searchSubtree(root *Node, kind, value string) []*Node {
if root == nil {
return nil
}
var result []*Node
if match(&root.Element, kind, value) {
result = append(result, root)
}
for _, child := range root.Children {
result = append(result, searchSubtree(child, kind, value)...)
}
return result
}
// searchSubtreeBySelector returns all nodes under root (inclusive) matching sel.
func searchSubtreeBySelector(root *Node, sel Selector) []*Node {
if root == nil {
return nil
}
var result []*Node
if matchSelector(&root.Element, sel) {
result = append(result, root)
}
for _, child := range root.Children {
result = append(result, searchSubtreeBySelector(child, sel)...)
}
return result
}
func parseSelector(selector string) (string, string, bool) {
index := strings.IndexByte(selector, ':')
if index <= 0 {
return "", "", false
}
return selector[:index], selector[index+1:], true
}
func match(element *Element, kind, value string) bool {
switch kind {
case "id":
if element.ResourceID == value {
return true
}
return strings.HasSuffix(element.ResourceID, ":id/"+value)
case "text":
return matchAttr(element, "text", value)
case "desc":
return element.Description == value || strings.HasPrefix(element.Description, value+", ")
case "descPrefix":
return strings.HasPrefix(element.Description, value)
default:
return matchAttr(element, kind, value)
}
}
// boundsPattern matches "[l,t,r,b]" (4-value Android/sidecar format).
var boundsPattern = regexp.MustCompile(`^\[(-?\d+),(-?\d+),(-?\d+),(-?\d+)\]$`)
// boundsPatternTwo matches "[x1,y1][x2,y2]" (iOS XCUITest format).
var boundsPatternTwo = regexp.MustCompile(`^\[(-?\d+),(-?\d+)\]\[(-?\d+),(-?\d+)\]$`)
func parseBounds(text string) (Bounds, error) {
if m := boundsPattern.FindStringSubmatch(text); m != nil {
coords := make([]int, 4)
for i := range 4 {
v, err := strconv.Atoi(m[i+1])
if err != nil {
return Bounds{}, err
}
coords[i] = v
}
return Bounds{Left: coords[0], Top: coords[1], Right: coords[2], Bottom: coords[3]}, nil
}
if m := boundsPatternTwo.FindStringSubmatch(text); m != nil {
coords := make([]int, 4)
for i := range 4 {
v, err := strconv.Atoi(m[i+1])
if err != nil {
return Bounds{}, err
}
coords[i] = v
}
return Bounds{Left: coords[0], Top: coords[1], Right: coords[2], Bottom: coords[3]}, nil
}
return Bounds{}, fmt.Errorf("bounds %q: not in [L,T,R,B] or [x1,y1][x2,y2] form", text)
}